Targeting IGF2BP3 in Cancer
暂无分享,去创建一个
Wenliang Chen | Ximing Xu | Yang Shen | Yangtao Xu | Xin Liu | Jiayu Chen
[1] P. Chen,et al. Multi-omics analysis of N6-methyladenosine reader IGF2BP3 as a promising biomarker in pan-cancer , 2023, Frontiers in Immunology.
[2] Xi-lin Zhang,et al. STRIP2 motivates non-small cell lung cancer progression by modulating the TMBIM6 stability through IGF2BP3 dependent , 2023, Journal of Experimental & Clinical Cancer Research.
[3] Z. Ling,et al. Comprehensive transcriptomic profiling and mutational landscape of primary gastric linitis plastica , 2022, Gastric Cancer.
[4] Qin Wang,et al. Expression patterns of platinum resistance-related genes in lung adenocarcinoma and related clinical value models , 2022, Frontiers in Genetics.
[5] Hong Wang,et al. IGF2BP3 is an essential N6-methyladenosine biotarget for suppressing ferroptosis in lung adenocarcinoma cells , 2022, Materials today. Bio.
[6] Jingwen Liu,et al. m^6A-modified circFOXK2 targets GLUT1 to accelerate oral squamous cell carcinoma aerobic glycolysis , 2022, Cancer Gene Therapy.
[7] D. Matei,et al. NCCN Guidelines® Insights: Ovarian Cancer, Version 3.2022. , 2022, Journal of the National Comprehensive Cancer Network : JNCCN.
[8] Yanhua Qi,et al. The N6-methyladenosine-mediated lncRNA WEE2-AS1 promotes glioblastoma progression by stabilizing RPN2 , 2022, Theranostics.
[9] Hui Li,et al. CircARID1A binds to IGF2BP3 in gastric cancer and promotes cancer proliferation by forming a circARID1A-IGF2BP3-SLC7A5 RNA–protein ternary complex , 2022, Journal of experimental & clinical cancer research : CR.
[10] Jie Li,et al. IGF2BP3-NRF2 axis regulates ferroptosis in hepatocellular carcinoma. , 2022, Biochemical and biophysical research communications.
[11] Baohui Zhang,et al. Systematic analyses to explore immune gene sets-based signature in hepatocellular carcinoma, in which IGF2BP3 contributes to tumor progression. , 2022, Clinical immunology.
[12] Yameng Cui,et al. Isoliquiritigenin inhibits non-small cell lung cancer progression via m6A/IGF2BP3-dependent TWIST1 mRNA stabilization. , 2022, Phytomedicine : international journal of phytotherapy and phytopharmacology.
[13] Kai Li,et al. The m6A/m5C/m1A Regulated Gene Signature Predicts the Prognosis and Correlates With the Immune Status of Hepatocellular Carcinoma , 2022, Frontiers in Immunology.
[14] Xiaoxin Ma,et al. IGF2BP3 enhances the mRNA stability of E2F3 by interacting with LINC00958 to promote endometrial carcinoma progression , 2022, Cell death discovery.
[15] Zhichao Han,et al. Fine particulate matter induces METTL3-mediated m6A modification of BIRC5 mRNA in bladder cancer. , 2022, Journal of hazardous materials.
[16] Xia Hu,et al. IGF2BP3-stabilized SIX4 promotes the proliferation, migration, invasion and tube formation of ovarian cancer cells , 2022, Molecular medicine reports.
[17] Xingchen Pang,et al. Transfer of IGF2BP3 Through Ara-C-Induced Apoptotic Bodies Promotes Survival of Recipient Cells , 2022, Frontiers in Oncology.
[18] J. McAlpine,et al. Endometrial cancer , 2022, The Lancet.
[19] Dong Liu,et al. The role of Insulin-like growth factor 2 mRNA-binding proteins (IGF2BPs) as m6A readers in cancer , 2022, International journal of biological sciences.
[20] Danfeng Zhang,et al. Methyltransferase-like 3 induces the development of cervical cancer by enhancing insulin-like growth factor 2 mRNA-binding proteins 3-mediated apoptotic chromatin condensation inducer 1 mRNA stability , 2022, Bioengineered.
[21] Hong-Tao Zhang,et al. RNA-binding Proteins and Cancer Metastasis. , 2022, Seminars in cancer biology.
[22] Hwee Tong Tan,et al. Global analysis of RNA-binding proteins identifies a positive feedback loop between LARP1 and MYC that promotes tumorigenesis , 2022, Cellular and Molecular Life Sciences.
[23] Xiang Xu,et al. METTL3/IGF2BP3 axis inhibits tumor immune surveillance by upregulating N6-methyladenosine modification of PD-L1 mRNA in breast cancer , 2022, Molecular cancer.
[24] Rachel E. Nicoletto,et al. Cytotoxic mechanisms of doxorubicin at clinically relevant concentrations in breast cancer cells , 2022, Cancer Chemotherapy and Pharmacology.
[25] Jing Wu,et al. MYC-activated RNA N6-methyladenosine reader IGF2BP3 promotes cell proliferation and metastasis in nasopharyngeal carcinoma , 2022, Cell death discovery.
[26] Shiming Yang,et al. Demethylase ALKBH5 suppresses invasion of gastric cancer via PKMYT1 m6A modification , 2022, Molecular cancer.
[27] H. Kondoh,et al. RNA-binding proteins: underestimated contributors in tumorigenesis. , 2022, Seminars in cancer biology.
[28] Ping Zhang,et al. The m6A reader IGF2BP3 promotes acute myeloid leukemia progression by enhancing RCC2 stability , 2022, Experimental & molecular medicine.
[29] Jianye Xu,et al. EWSR1-induced circNEIL3 promotes glioma progression and exosome-mediated macrophage immunosuppressive polarization via stabilizing IGF2BP3 , 2022, Molecular cancer.
[30] Fei Wang,et al. The cancer-testis lncRNA lnc-CTHCC promotes hepatocellular carcinogenesis by binding hnRNP K and activating YAP1 transcription , 2022, Nature Cancer.
[31] Zhe-Sheng Chen,et al. Hsa_circ_0003258 promotes prostate cancer metastasis by complexing with IGF2BP3 and sponging miR-653-5p , 2022, Molecular cancer.
[32] A. Jemal,et al. Cancer statistics, 2022 , 2022, CA: a cancer journal for clinicians.
[33] Ping Wang,et al. IGF2BP3 promotes cell metastasis and is associated with poor patient survival in nasopharyngeal carcinoma , 2021, Journal of cellular and molecular medicine.
[34] N. Sun,et al. m6A regulator expression profile predicts the prognosis, benefit of adjuvant chemotherapy, and response to anti-PD-1 immunotherapy in patients with small-cell lung cancer , 2021, BMC Medicine.
[35] N. Sun,et al. m6A regulators as predictive biomarkers for chemotherapy benefit and potential therapeutic targets for overcoming chemotherapy resistance in small-cell lung cancer , 2021, Journal of Hematology & Oncology.
[36] Tie Liu,et al. A positive feedback loop of lncRNA-RMRP/ZNRF3 axis and Wnt/β-catenin signaling regulates the progression and temozolomide resistance in glioma , 2021, Cell Death & Disease.
[37] Shouzhen Chen,et al. Comprehensive analysis of N6-methyladenosine regulators with the tumor immune landscape and correlation between the insulin-like growth factor 2 mRNA-binding protein 3 and programmed death ligand 1 in bladder cancer , 2021, Cancer Cell International.
[38] A. Jemal,et al. Brain and other central nervous system tumor statistics, 2021 , 2021, CA: a cancer journal for clinicians.
[39] Xiaolin Wang,et al. Circular RNA circ-TNPO3 suppresses metastasis of GC by acting as a protein decoy for IGF2BP3 to regulate the expression of MYC and SNAIL , 2021, Molecular therapy. Nucleic acids.
[40] Wei Zhang,et al. CircRNA circFOXK2 facilitates oncogenesis in breast cancer via IGF2BP3/miR-370 axis , 2021, Aging.
[41] Sol Katzman,et al. The RNA-binding protein IGF2BP3 is critical for MLL-AF4-mediated leukemogenesis , 2021, Leukemia.
[42] Guo Q. Wang,et al. Molecular characterization of colorectal cancer: A five-gene prognostic signature based on RNA-binding proteins , 2021, Saudi journal of gastroenterology : official journal of the Saudi Gastroenterology Association.
[43] P. Wei,et al. RNA-binding protein IMP3 is a novel regulator of MEK1/ERK signaling pathway in the progression of colorectal Cancer through the stabilization of MEKK1 mRNA , 2021, Journal of experimental & clinical cancer research : CR.
[44] F. Bray,et al. The ever‐increasing importance of cancer as a leading cause of premature death worldwide , 2021, Cancer.
[45] S. Warnakulasuriya,et al. Oral Cancer Screening: Past, Present, and Future , 2021, Journal of dental research.
[46] I. Berindan‐Neagoe,et al. Epithelial–Mesenchymal Transition Gene Signature Related to Prognostic in Colon Adenocarcinoma , 2021, Journal of personalized medicine.
[47] Daniela Bevanda Glibo,et al. IMP3 protein is an independent prognostic factor of clinical stage II rectal cancer , 2021, Scientific Reports.
[48] J. Gu,et al. linc01305 promotes metastasis and proliferation of esophageal squamous cell carcinoma through interacting with IGF2BP2 and IGF2BP3 to stabilize HTR3A mRNA. , 2021, The international journal of biochemistry & cell biology.
[49] F. Tan,et al. Comprehensive Analysis of PD-L1 Expression, Immune Infiltrates, and m6A RNA Methylation Regulators in Esophageal Squamous Cell Carcinoma , 2021, Frontiers in Immunology.
[50] Andrew J. Bannister,et al. Small-molecule inhibition of METTL3 as a strategy against myeloid leukaemia , 2021, Nature.
[51] F. Mosaffa,et al. Glucosamine attenuates drug resistance in Mitoxantrone-resistance breast cancer cells. , 2021, The Journal of pharmacy and pharmacology.
[52] L. Yin,et al. KIF18A knockdown reduces proliferation, migration, invasion and enhances radiosensitivity of esophageal cancer. , 2021, Biochemical and biophysical research communications.
[53] H. Adami,et al. The Evolving Epidemiology of Nasopharyngeal Carcinoma , 2021, Cancer Epidemiology, Biomarkers & Prevention.
[54] K. Wiedemeyer,et al. Prognostic and Theranostic Biomarkers in Ovarian Clear Cell Carcinoma , 2021, International journal of gynecological pathology : official journal of the International Society of Gynecological Pathologists.
[55] Hongtao Liu. Emerging agents and regimens for AML , 2021, Journal of Hematology & Oncology.
[56] Yue Xu,et al. m6A Regulators Is Differently Expressed and Correlated With Immune Response of Esophageal Cancer , 2021, Frontiers in Cell and Developmental Biology.
[57] A. Jemal,et al. Global Cancer Statistics 2020: GLOBOCAN Estimates of Incidence and Mortality Worldwide for 36 Cancers in 185 Countries , 2021, CA: a cancer journal for clinicians.
[58] Shichao Han,et al. Downregulation of LncRNA DARS-AS1 Inhibits the Tumorigenesis of Cervical Cancer via Inhibition of IGF2BP3 , 2021, OncoTargets and therapy.
[59] Zesong Li,et al. LncRNA CDKN2B-AS1 stabilized by IGF2BP3 drives the malignancy of renal clear cell carcinoma through epigenetically activating NUF2 transcription , 2021, Cell Death & Disease.
[60] A. Jemal,et al. Cancer Statistics, 2021 , 2021, CA: a cancer journal for clinicians.
[61] Xu Zhang,et al. DMDRMR-Mediated Regulation of m6A-Modified CDK4 by m6A Reader IGF2BP3 Drives ccRCC Progression , 2020, Cancer Research.
[62] S. Motoyama,et al. IGF2BP3 Expression Correlates With Poor Prognosis in Esophageal Squamous Cell Carcinoma. , 2020, The Journal of surgical research.
[63] T. Luetkens,et al. Role of immunotherapy in Ewing sarcoma , 2020, Journal for ImmunoTherapy of Cancer.
[64] Xiaowei Wang,et al. LINC00460 facilitated tongue squamous cell carcinoma progression via the miR-320b/IGF2BP3 axis. , 2020, Oral diseases.
[65] Liying Sun,et al. circIGHG-Induced Epithelial-to-Mesenchymal Transition Promotes Oral Squamous Cell Carcinoma Progression via miR-142-5p/IGF2BP3 Signaling , 2020, Cancer Research.
[66] Anas M. Saad,et al. Colorectal Cancer Epidemiology: Recent trends and Impact on Outcomes. , 2020, Current drug targets.
[67] Gongxian Wang,et al. IGF2BP3 facilitates cell proliferation and tumorigenesis via modulation of JAK/STAT signalling pathway in human bladder cancer , 2020, Journal of cellular and molecular medicine.
[68] Na Liu,et al. Long Noncoding RNA TINCR-Mediated Regulation of Acetyl-CoA Metabolism Promotes Nasopharyngeal Carcinoma Progression and Chemoresistance , 2020, Cancer Research.
[69] M. Saleh,et al. Glioblastoma Immune Landscape and the Potential of New Immunotherapies , 2020, Frontiers in Immunology.
[70] Donghong Zhang,et al. Long Noncoding RNA KCNMB2-AS1 Stabilized by N6-Methyladenosine Modification Promotes Cervical Cancer Growth Through Acting as a Competing Endogenous RNA , 2020, Cell transplantation.
[71] Xiaojiang Liu,et al. Berberine inhibits proliferation and induces G0/G1 phase arrest in colorectal cancer cells by downregulating IGF2BP3. , 2020, Life sciences.
[72] C. Brennan,et al. Development of a gene expression-based prognostic signature for IDH wild-type glioblastoma. , 2020, Neuro-oncology.
[73] Weiguo Lu,et al. CircCDKN2B-AS1 interacts with IMP3 to stabilize hexokinase 2 mRNA and facilitate cervical squamous cell carcinoma aerobic glycolysis progression , 2020, Journal of Experimental & Clinical Cancer Research.
[74] Bo Yu,et al. RNA N6-methyladenosine reader IGF2BP3 regulates cell cycle and angiogenesis in colon cancer , 2020, Journal of Experimental & Clinical Cancer Research.
[75] Mei Zhao,et al. Stabilization of oncogenic transcripts by the IGF2BP3/ELAVL1 complex promotes tumorigenicity in colorectal cancer. , 2020, American journal of cancer research.
[76] Wei Zhang,et al. hsa_circ_0000231 Promotes colorectal cancer cell growth through upregulation of CCND2 by IGF2BP3/miR-375 dual pathway , 2020, Cancer cell international.
[77] A. Mercurio,et al. Insulin-Like Growth Factor 2 mRNA-Binding Protein 3 Modulates Aggressiveness of Ewing Sarcoma by Regulating the CD164-CXCR4 Axis , 2020, Frontiers in Oncology.
[78] P. Ma,et al. Y Chromosome LncRNA Are Involved in Radiation Response of Male Non–Small Cell Lung Cancer Cells , 2020, Cancer Research.
[79] Wei Zhang,et al. Hsa_circ_0026134 expression promoted TRIM25- and IGF2BP3-mediated hepatocellular carcinoma cell proliferation and invasion via sponging miR-127-5p , 2020, Bioscience reports.
[80] K. Sampath,et al. The RNA-binding protein Igf2bp3 is critical for embryonic and germline development in zebrafish , 2020, bioRxiv.
[81] X. Lv,et al. Circ-MMP2 (circ-0039411) induced by FOXM1 promotes the proliferation and migration of lung adenocarcinoma cells in vitro and in vivo , 2020, Cell Death & Disease.
[82] Hongsheng Wang,et al. N6-methyladenosine regulates glycolysis of cancer cells through PDK4 , 2020, Nature Communications.
[83] Jun Liu,et al. Identification of Crucial Genes Associated With Immune Cell Infiltration in Hepatocellular Carcinoma by Weighted Gene Co-expression Network Analysis , 2020, Frontiers in Genetics.
[84] Hongsheng Wang,et al. METTL3 regulates the malignancy of cervical cancer via post-transcriptional regulation of RAB2B. , 2020, European journal of pharmacology.
[85] Hashem B. El-Serag,et al. Epidemiology of Hepatocellular Carcinoma , 2020, Hepatology.
[86] D. Jiao,et al. The Aberrant Expression of MicroRNA-125a-5p/IGF2BP3 Axis in Advanced Gastric Cancer and Its Clinical Relevance , 2020, Technology in cancer research & treatment.
[87] Rabin Niroula,et al. Acute Myeloid Leukemia: A Review. , 2020, Rhode Island medical journal.
[88] J. Gui,et al. Igf2bp3 maintains maternal RNA stability and ensures early embryo development in zebrafish , 2020, Communications Biology.
[89] Ligang Wang,et al. LINC00467 promotes cell proliferation and metastasis by binding with IGF2BP3 to enhance the mRNA stability of TRAF5 in hepatocellular carcinoma , 2020, The journal of gene medicine.
[90] H. El‐Serag,et al. Burden of Gastric Cancer. , 2020, Clinical gastroenterology and hepatology : the official clinical practice journal of the American Gastroenterological Association.
[91] S. Tomić,et al. Prognostic value of IMP3 immunohistochemical expression in triple negative breast cancer , 2020, Medicine.
[92] Chih-Hung Hsu,et al. The roles of m6A RNA modifiers in human cancer. , 2020, Journal of the Chinese Medical Association : JCMA.
[93] W. Pan,et al. Long noncoding RNA CERS6‐AS1 functions as a malignancy promoter in breast cancer by binding to IGF2BP3 to enhance the stability of CERS6 mRNA , 2019, Cancer medicine.
[94] Q. Ding,et al. METTL3-mediated m6A modification of HDGF mRNA promotes gastric cancer progression and has prognostic significance , 2019, Gut.
[95] Boris Hadaschik,et al. Circulating and tissue IMP3 levels are correlated with poor survival in renal cell carcinoma , 2019, International journal of cancer.
[96] F. Amant,et al. Addition of IMP3 to L1CAM for discrimination between low- and high-grade endometrial carcinomas: an ENITEC collaboration study. , 2019, Human pathology.
[97] Yingqin Li,et al. Gemcitabine and Cisplatin Induction Chemotherapy in Nasopharyngeal Carcinoma. , 2019, The New England journal of medicine.
[98] K. Lu,et al. FNDC3B circular RNA promotes the migration and invasion of gastric cancer cells via the regulation of E‐cadherin and CD44 expression , 2019, Journal of cellular physiology.
[99] Peng Yang,et al. Avenanthramide A Induces Cellular Senescence via miR-129-3p/Pirh2/p53 Signaling Pathway To Suppress Colon Cancer Growth. , 2019, Journal of agricultural and food chemistry.
[100] Yongshuai Jiang,et al. PD-1 and PD-L1 in cancer immunotherapy: clinical implications and future considerations , 2019, Human vaccines & immunotherapeutics.
[101] M. Salimi,et al. Unearthing Regulatory Axes of Breast Cancer circRNAs Networks to Find Novel Targets and Fathom Pivotal Mechanisms , 2019, Interdisciplinary Sciences: Computational Life Sciences.
[102] E. Nafziger,et al. Evidence-Based Practice: Temozolomide Beyond Glioblastoma , 2019, Current Oncology Reports.
[103] Jean-Yves Roignant,et al. Mechanistic insights into m6A RNA enzymes. , 2019, Biochimica et biophysica acta. Gene regulatory mechanisms.
[104] Siyuan Liu,et al. Blockade of miR-3614 maturation by IGF2BP3 increases TRIM25 expression and promotes breast cancer cell proliferation , 2019, EBioMedicine.
[105] H. Aburatani,et al. DNA demethylation is associated with malignant progression of lower-grade gliomas , 2019, Scientific Reports.
[106] G. Giles,et al. Genome-wide DNA methylation assessment of 'BRCA1-like' early-onset breast cancer: Data from the Australian Breast Cancer Family Registry. , 2018, Experimental and molecular pathology.
[107] Tingting Shao,et al. CircRNA circHIPK3 serves as a prognostic marker to promote glioma progression by regulating miR-654/IGF2BP3 signaling. , 2018, Biochemical and biophysical research communications.
[108] M. Linscheid,et al. Destabilizing the interplay between miR-1275 and IGF2BPs by Tamarix articulata and quercetin in hepatocellular carcinoma , 2018, Natural product research.
[109] J. Piriyapongsa,et al. Comparison of gene expression profiles between human erythroid cells derived from fetal liver and adult peripheral blood , 2018, PeerJ.
[110] L. Zhu,et al. IMP3 Stabilization of WNT5B mRNA Facilitates TAZ Activation in Breast Cancer , 2018, Cell reports.
[111] P. Lollini,et al. Insulin-Like Growth Factor 2 mRNA-Binding Protein 3 is a Novel Post-Transcriptional Regulator of Ewing Sarcoma Malignancy , 2018, Clinical Cancer Research.
[112] P. Picci,et al. Insulin-Like Growth Factor 2 mRNA-Binding Protein 3 Influences Sensitivity to Anti-IGF System Agents Through the Translational Regulation of IGF1R , 2018, Front. Endocrinol..
[113] Huyen Trang Ha Thi,et al. IMP2 and IMP3 cooperate to promote the metastasis of triple-negative breast cancer through destabilization of progesterone receptor. , 2018, Cancer letters.
[114] Stefan Hüttelmaier,et al. Recognition of RNA N6-methyladenosine by IGF2BP Proteins Enhances mRNA Stability and Translation , 2018, Nature Cell Biology.
[115] K. Greish,et al. Micellar formulations of Crizotinib and Dasatinib in the management of glioblastoma multiforme , 2017, Journal of drug targeting.
[116] Henning Urlaub,et al. Human METTL16 is a N6‐methyladenosine (m6A) methyltransferase that targets pre‐mRNAs and various non‐coding RNAs , 2017, EMBO reports.
[117] Z. Naito,et al. Prognostic value of IMP3 expression as a determinant of chemosensitivity in triple-negative breast cancer. , 2017, Pathology, research and practice.
[118] K. Yamashita,et al. The H19-PEG10/IGF2BP3 axis promotes gastric cancer progression in patients with high lymph node ratios , 2017, Oncotarget.
[119] L. Rimsza,et al. Neonatal expression of RNA-binding protein IGF2BP3 regulates the human fetal-adult megakaryocyte transition , 2017, The Journal of clinical investigation.
[120] Yonglei Liu,et al. CD44+ fibroblasts increases breast cancer cell survival and drug resistance via IGF2BP3‐CD44‐IGF2 signalling , 2017, Journal of cellular and molecular medicine.
[121] Jun Yu,et al. IGF2BP3 functions as a potential oncogene and is a crucial target of miR-34a in gastric carcinogenesis , 2017, Molecular Cancer.
[122] Jie Jin,et al. FTO Plays an Oncogenic Role in Acute Myeloid Leukemia as a N6-Methyladenosine RNA Demethylase. , 2017, Cancer cell.
[123] C. Marchetti,et al. Laminin-5 and insulin-like growth factor-II mRNA binding protein-3 (IMP3) expression in preoperative biopsy specimens from oral cancer patients: Their role in neural spread risk and survival stratification. , 2016, Journal of cranio-maxillo-facial surgery : official publication of the European Association for Cranio-Maxillo-Facial Surgery.
[124] Chris Jones,et al. Characterizing and targeting PDGFRA alterations in pediatric high-grade glioma , 2016, Oncotarget.
[125] N. Akimitsu,et al. Oncofetal protein IGF2BP3 facilitates the activity of proto-oncogene protein eIF4E through the destabilization of EIF4E-BP2 mRNA , 2016, Oncogene.
[126] L. Wessels,et al. Sensitizing Triple-Negative Breast Cancer to PI3K Inhibition by Cotargeting IGF1R , 2016, Molecular Cancer Therapeutics.
[127] H. Goel,et al. IMP3 promotes stem-like properties in triple-negative breast cancer by regulating SLUG , 2016, Oncogene.
[128] Y. Jeng,et al. IL‐18‐induced interaction between IMP3 and HuR contributes to COX‐2 mRNA stabilization in acute myeloid leukemia , 2016, Journal of leukocyte biology.
[129] Helmut Kettenmann,et al. The role of microglia and macrophages in glioma maintenance and progression , 2015, Nature Neuroscience.
[130] M. Soleimani,et al. MicroRNA-129-1 acts as tumour suppressor and induces cell cycle arrest of GBM cancer cells through targeting IGF2BP3 and MAPK1 , 2015, Journal of Medical Genetics.
[131] J. Chai,et al. Identification of A Novel Small-Molecule Binding Site of the Fat Mass and Obesity Associated Protein (FTO). , 2015, Journal of medicinal chemistry.
[132] Haiyang Xie,et al. An isocorydine derivative (d-ICD) inhibits drug resistance by downregulating IGF2BP3 expression in hepatocellular carcinoma , 2015, Oncotarget.
[133] N. Chow,et al. Overexpression of the RNA-binding proteins Lin28B and IGF2BP3 (IMP3) is associated with chemoresistance and poor disease outcome in ovarian cancer , 2015, British Journal of Cancer.
[134] Erez Y. Levanon,et al. m6A mRNA methylation facilitates resolution of naïve pluripotency toward differentiation , 2015, Science.
[135] Chuan He,et al. N6-methyladenosine-dependent RNA structural switches regulate RNA-protein interactions , 2015, Nature.
[136] Rivadavio Amorim,et al. IMP3 expression in gastric cancer: association with clinicopathological features and HER2 status , 2014, Journal of Cancer Research and Clinical Oncology.
[137] S. Shariat,et al. Prognostic value of tissue and circulating levels of IMP3 in prostate cancer , 2014, International journal of cancer.
[138] V. Narry Kim,et al. Emerging Roles of RNA Modification: m6A and U-Tail , 2014, Cell.
[139] John T. Powers,et al. Lin28b is sufficient to drive liver cancer and necessary for its maintenance in murine models. , 2014, Cancer cell.
[140] Zhike Lu,et al. m6A-dependent regulation of messenger RNA stability , 2013, Nature.
[141] A. Mercurio,et al. IMP3 Protein Promotes Chemoresistance in Breast Cancer Cells by Regulating Breast Cancer Resistance Protein (ABCG2) Expression* , 2013, The Journal of Biological Chemistry.
[142] G. Sauter,et al. Expression of insulin-like growth factor II mRNA-binding protein 3 in squamous cell carcinomas of the head and neck. , 2013, Journal of oral pathology & medicine : official publication of the International Association of Oral Pathologists and the American Academy of Oral Pathology.
[143] Arne Klungland,et al. ALKBH5 is a mammalian RNA demethylase that impacts RNA metabolism and mouse fertility. , 2013, Molecular cell.
[144] Reiko Nishihara,et al. Insulin-like growth factor 2 messenger RNA binding protein 3 (IGF2BP3) is a marker of unfavourable prognosis in colorectal cancer. , 2012, European journal of cancer.
[145] Kwang-Kyun Park,et al. Functional invadopodia formation through stabilization of the PDPN transcript by IMP-3 and cancer-stromal crosstalk for PDPN expression. , 2012, Carcinogenesis.
[146] M. Lederer,et al. Insulin-like growth factor 2 mRNA-binding proteins (IGF2BPs): post-transcriptional drivers of cancer progression? , 2012, Cellular and Molecular Life Sciences.
[147] S. Kitano,et al. Multicenter, phase II clinical trial of cancer vaccination for advanced esophageal cancer with three peptides derived from novel cancer-testis antigens , 2012, Journal of Translational Medicine.
[148] Yusuke Nakamura,et al. Multicenter, phase II clinical trial of cancer vaccination for advanced esophageal cancer with three peptides derived from novel cancer-testis antigens , 2012, Journal of Translational Medicine.
[149] A. Mercurio,et al. Regulation of IMP3 by EGFR Signaling and Repression by ERβ: Implications for Triple Negative Breast Cancer , 2011, Oncogene.
[150] K. Rock,et al. The oncofetal protein IMP3: a novel molecular marker to predict aggressive meningioma. , 2011, Archives of pathology & laboratory medicine.
[151] Chengqi Yi,et al. N6-Methyladenosine in Nuclear RNA is a Major Substrate of the Obesity-Associated FTO , 2011, Nature chemical biology.
[152] S. Senju,et al. Peptides derived from human insulin‐like growth factor‐II mRNA binding protein 3 can induce human leukocyte antigen‐A2‐restricted cytotoxic T lymphocytes reactive to cancer cells , 2011, Cancer science.
[153] Y. Jeng,et al. RNA‐binding protein insulin‐like growth factor II mRNA‐binding protein 3 expression promotes tumor invasion and predicts early recurrence and poor prognosis in hepatocellular carcinoma , 2008, Hepatology.
[154] Zhong Jiang,et al. IMP3 Predicts Aggressive Superficial Urothelial Carcinoma of the Bladder , 2008, Clinical Cancer Research.
[155] T. Hansen,et al. Expression of IGF-II mRNA-binding proteins (IMPs) in gonads and testicular cancer. , 2005, Reproduction.
[156] T. Hansen,et al. Dwarfism and Impaired Gut Development in Insulin-Like Growth Factor II mRNA-Binding Protein 1-Deficient Mice , 2004, Molecular and Cellular Biology.
[157] A. Fainsod,et al. The RNA-binding protein Vg1 RBP is required for cell migration during early neural development , 2003, Development.
[158] F. Nielsen,et al. Cytoplasmic trafficking of IGF-II mRNA-binding protein by conserved KH domains. , 2002, Journal of cell science.
[159] H. Okano,et al. Expression of mouse igf2 mRNA‐binding protein 3 and its implications for the developing central nervous system , 2001, Journal of neuroscience research.
[160] M. Beil,et al. Expression of the highly conserved RNA binding protein KOC in embryogenesis , 1999, Mechanisms of Development.
[161] J. Zucman‐Rossi,et al. Hepatocellular carcinoma , 1998, Nature Reviews Disease Primers.
[162] H. Friess,et al. Cloning of a gene highly overexpressed in cancer coding for a novel KH-domain containing protein , 1997, Oncogene.
[163] J. Ross. Meningioma , 1935, Encyclopedia of Gerontology and Population Aging.
[164] K. K. van de Vijver,et al. Addition of IMP3 to L1CAM for discrimination between low- and high-grade endometrial carcinomas: an ENITEC collaboration study. , 2019, Human pathology.
[165] K. Rock,et al. IMP 3 Predicts Aggressive Superficial Urothelial Carcinoma of the Bladder , 2008 .